Area of research
Water Science and Technology · Renewable Energy, Sustainability and the Environment
Research interest
Research focused on Bagasse and Arabidopsis, with related work in Gene, Genetics, Electrode. Notable publications include 'Modulation of Single Atomic Co and Fe Sites on Hollow Carbon Nanospheres as Oxygen Electrodes for Rechargeable Zn–Air Batteries', 'A transcriptomic analysis reveals soybean seed pre-harvest deterioration resistance pathways under high temperature and humidity stress', and 'Enhanced sulfamethoxazole degradation in soil by immobilized sulfamethoxazole-degrading microbes on bagasse'.
Genetic variation in a tandemly duplicated <scp>TPS</scp> gene cluster contributes to the diversity of aroma in lychee fruit
Evolution and functional characterization of a biosynthetic gene cluster for saponin biosynthesis in Sapindaceae
Chromatic symphony of fleshy fruits: functions, biosynthesis and metabolic engineering of bioactive compounds
The Diversity of the <scp>DNA</scp> ‐Binding Landscape in the <scp>DREB</scp> / <scp>ERF</scp> Family: Focusing on Reproductive Processes in Fruit Trees With Highly Heterozygous Genome
SlHB8 Is a Novel Factor in Enhancing Cold Resistance in Tomato Anthers by Modulating Tapetal Cell Death
Genome-Wide Identification of GH17s Family Genes and Biological Function Analysis of SlA6 in Tomato
MicroRNA482/2118 is lineage‐specifically involved in gibberellin signalling via the regulation of <i>GID1</i> expression by targeting noncoding <i>PHAS</i> genes and subsequently instigated phasiRNAs
GmUGT73F4 plays important roles in enhancing seed vitality and tolerance to abiotic stresses in transgenic Arabidopsis
GmCDPKSK5 Interacting with GmFAD2-1B Participates in Regulation of Seed Development in Soybean Under High Temperature and Humidity Stress
Modulation of Single Atomic Co and Fe Sites on Hollow Carbon Nanospheres as Oxygen Electrodes for Rechargeable Zn–Air Batteries
Investigating the biodegradation of sulfadiazine in soil using <i>Enterobacter cloacae</i> T2 immobilized on bagasse
A transcriptomic analysis reveals soybean seed pre-harvest deterioration resistance pathways under high temperature and humidity stress
Enhanced sulfamethoxazole degradation in soil by immobilized sulfamethoxazole-degrading microbes on bagasse